2002Unpublished venueRequires access

A simulation of free-surface electrohydrodynamic flow

Kenneth L. Kaiser, W. L. Weeks

Open publisher page 3 citations

Abstract

Free-surface electrohydrodynamics is a complex phenomenon that is difficult to describe, explain, and predict. Mathematical models and a simulator were developed to analyze this flow in two dimensions. Several configurations were investigated. Simulation results indicate that the effects of inertia can be substantial in the dielectrophoretic rise of fluid between two electrified plates. The initial stages of the radial breakup of a charged conducting fluid cylinder consist of wavelike oscillations along the surface. The shape of an insulating jet from a nozzle is seen to be highly dependent on the electric field configuration. In the initial formation of a conducting jet, a 10% increase in applied voltage results in about a 10% increase in fluid velocity. The width of the jet increases with increasing viscosity. Variation in the applied voltage does not influence the shape of the jet at a fixed-reference location. A set of time sequence graphs illustrates the formation and breakup of an electrified jet.>

About this research paper

What this paper is about

Free-surface electrohydrodynamics is a complex phenomenon that is difficult to describe, explain, and predict. Mathematical models and a simulator were developed to analyze this flow in two dimensions. Several configurations were investigated. Simulation results indicate that the effects of inertia can be substantial in the dielectrophoretic rise of fluid between two electrified plates. The initial stages of the radial breakup of a charged conducting fluid cylinder consist of wavelike oscillations along the surface. The shape of an insulating jet from a nozzle is seen to be highly dependent on the electric field configuration. In the initial formation of a conducting jet, a 10% increase in applied voltage results in about a 10% increase in fluid velocity. The width of the jet increases with increasing viscosity. Variation in the applied voltage does not influence the shape of the jet at a fixed-reference location. A set of time sequence graphs illustrates the formation and breakup of an electrified jet.>

Why it matters

OpenAlex reports 3 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Free-surface electrohydrodynamics is a complex phenomenon that is difficult to describe, explain, and predict. Mathematical models and a simulator were developed to analyze this flow in two dimensions. Several configurations were investigated. Simulation results indicate that the effects of inertia can be substantial in the dielectrophoretic rise of fluid between two electrified plates. The initial stages of the radial breakup of a charged conducting fluid cylinder consist of wavelike oscillations along the surface. The shape of an insulating jet from a nozzle is seen to be highly dependent on the electric field configuration. In the initial formation of a conducting jet, a 10% increase in applied voltage results in about a 10% increase in fluid velocity. The width of the jet increases with increasing viscosity. Variation in the applied voltage does not influence the shape of the jet at a fixed-reference location. A set of time sequence graphs illustrates the formation and breakup of an electrified jet.>

Key concepts: Electrohydrodynamics, Breakup, Jet (fluid), Nozzle, Mechanics, Electric field, Flow (mathematics), Free surface

Related papers

Back to paper searchBrowse research topicsOriginal source
A simulation of free-surface electrohydrodynamic flow — Research Paper | ScholarLens